A battery formed from the two half reactions below dies (reaches equilibrium). If [Fe^2+] was 0.24 M in the dead battery, what would [Cd^2+] be in the dead battery?
Half reaction......... E°
Fe^2+ → Fe ........-0.44
Cd^2+ → Cd .......-0.40
This is the way to solve it, but i don't know how to continue. please help?
Ecell = E°cell - (0.0591/2) × log (0.24 / x)
0 = 0.04 - (0.592 / 2) × log(0.24 / x)
Half reaction......... E°
Fe^2+ → Fe ........-0.44
Cd^2+ → Cd .......-0.40
This is the way to solve it, but i don't know how to continue. please help?
Ecell = E°cell - (0.0591/2) × log (0.24 / x)
0 = 0.04 - (0.592 / 2) × log(0.24 / x)